Question

How do you find all rational roots for `4y^5 + 8y^4 - 29y^3 - 42y^2 + 45y + 54 = 0`?

Answer 1

Zeros: `-1, 2, -3, 3/2, -3/2`

Explanation:

`f(y) = 4y^5+8y^4-29y^3-42y^2+45y+54`

By the rational root theorem, any rational zeros of `f(y)` are expressible in the form `p/q` for integers `p, q` with `p` a divisor of the constant term `54` and `q` a divisor of the coefficient `4` of the leading term.

That means that the only possible rational zeros are:

`+-1/4, +-1/2, +-3/4, +-1, +-3/2, +-2, +-9/4, +-3, +-9/2, +-6, +-27/4, +-9, +-27/2, +-18, +-27, +-54`

That's rather a lot of possibilities to try, but first note that:

`f(-1) = -4+8+29-42-45+54 = 0`

So `y=-1` is a zero and `(y+1)` a factor:

`4y^5+8y^4-29y^3-42y^2+45y+54`

`=(y+1)(4y^4+4y^3-33y^2-9y+54)`

Sticking with simpler calculations, let's try substituting `y=2` in the remaining quartic:

`4y^4+4y^3-33y^2-9y+54`

`=4(16)+4(8)-33(4)-9(2)+54`

`=64+32-132-18+54 = 0`

So `y=2` is a zero and `(y-2)` a factor:

`4y^4+4y^3-33y^2-9y+54 = (y-2)(4y^3+12y^2-9y-27)`

In the remaining cubic, the ratio of the first and second terms is the same as the ratio between the third and fourth terms. Hence it will factor by grouping:

`4y^3+12y^2-9y-27`

`=(4y^3+12y^2)-(9y+27)`

`=4y^2(y+3)-9(y+3)`

`=(4y^2-9)(y+3)`

`=((2y)^2-3^2)(y+3)`

`=(2y-3)(2y+3)(y+3)`

Hence three more zeros: `3/2`, `-3/2`, `-3`